997 resultados para GONZALEZ BALCARCE, ANTONIO


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We have studied the thermo-mechanical response and atomistic degradation of final lenses in HiPER project. Final silica lenses are squares of 75 × 75 cm2 with a thickness of 5 cm. There are two scenarios where lenses are located at 8 m from the centre: •HiPER 4a, bunches of 100 shots (maximum 5 DT shots <48 MJ at ≈0.1 Hz). No blanket in chamber geometry. •HiPER 4b, continuous mode with shots ≈50 MJ at 10 Hz to generate 0.5 GW. Liquid metal blanket in chamber design.

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Technofusion is the scientific&technical installation for fusion research in Spain, based on three pillars: • It is an open facility to European users. • It is a facility with instrumentation not accesible to small research groups. • It is designed to be closely coordiated with the European Fusion Program. With a budget of 80-100 M€ over five years, several top laboratories will be constructed

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The European HiPER project aims to demonstrate commercial viability of inertial fusion energy within the following two decades. This goal requires an extensive Research &Development program on materials for different applications (e.g., first wall, structural components and final optics). In this paper we will discuss our activities in the framework of HiPER to develop materials studies for the different areas of interest. The chamber first wall will have to withstand explosions of at least 100 MJ at a repetition rate of 5-10 Hz. If direct drive targets are used, a dry wall chamber operated in vacuum is preferable. In this situation the major threat for the wall stems from ions. For reasonably low chamber radius (5-10 m) new materials based on W and C are being investigated, e.g., engineered surfaces and nanostructured materials. Structural materials will be subject to high fluxes of neutrons leading to deleterious effects, such as, swelling. Low activation advanced steels as well as new nanostructured materials are being investigated. The final optics lenses will not survive the extreme ion irradiation pulses originated in the explosions. Therefore, mitigation strategies are being investigated. In addition, efforts are being carried out in understanding optimized conditions to minimize the loss of optical properties by neutron and gamma irradiation

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Copper nitride is a metastable material which results very attractive because of their potential to be used in functional device. Cu3 N easily decomposes into Cu and N2 by annealing [1] or irradiation (electron, ions, laser) [2, 3]. Previous studies carried out in N-rich Cu3 N films irradiated with Cu at 42MeV evidence a very efficient sputtering of N whose yield (5×10 3 atom/ion), for a film with a thickness of just 100 nm, suggest that the origin of the sputtering has an electronic nature. This N depletion was observed to be responsible for new phase formation ( Cu2 O) and pure Cu [4]

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The goal of the European laser fusion project, is to build an engineering facility for repetitive laser operation (HiPER 4a) and later a fusion reactor (HiPER 4b). A key aspect for laser fusion energy is the final optics. At the moment, it is based on silica transmission lenses located 8 m away from the chamber center. Lens lifetime depends on the irradiation conditions. We have used a 48 MJ shock ignition target for calculations. We have studied the thermo-mechanical effects of ions and X-rays on the lenses. Ions lead to lens melting and must therefore be mitigated. On the other hand, X-rays (~1% of the energy) does not produce either a significant temperature rise or detrimental stresses. Finally, we calculated the neutron flux and gamma dose rate on the lenses. Next, based on a simple model we studied the formation of color centers in the sample, which lead to optical absorption. Calculations show that simultaneous neutron and gamma irradiation does not significantly increase the optical absorption during the expected lifetime of the HiPER 4a facility. Under severe conditions (HiPER 4b), operation above 800 K or lens refreshing by thermal annealing treatments seem to assure adequate behavior.

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El estudio del lenguaje técnico es una tarea común a varias disciplinas. La terminología es una disciplina autónoma de carácter interdisciplinario al servicio de diferentes campos científico-técnicos. Los enfoques interdisciplinares/transversales permiten acercarse a un mismo fenómeno desde distintos ángulos ofreciendo una imagen más completa con diferentes aportaciones procedentes de los distintos métodos utilizados [1]. En la actualidad, es esencial la colaboración interdisciplinar de áreas que comparten aspectos íntimamente ligados como en el presente estudio: la terminología, la arquitectura y la construcción. La Normativa Técnica española en el área de la arquitectura y de la construcción ha sufrido muchos cambios en relación con la clasificación de los sistemas y elementos constructivos. La presente comunicación toma como punto de partida el análisis de un corpus 1 [2] lingüístico automatizado que contiene textos especializados, en lengua inglesa y española, del subdominio de sistemas y elementos constructivos de las estructuras metálicas de hierro y acero. La investigación se realiza mediante el estudio de estos textos de referencia empleados por los profesionales de la arquitectura y de la construcción. En esta comunicación se presentan los resultados relacionados con un elemento estructural que se presta a un análisis conceptual complejo, a saber “beam”, en español “viga”. Partimos del análisis semántico de las unidades clave (nudos conceptuales) para establecer las clases/categorías conceptuales pertinentes a este subdominio de especialidad. Posteriormente analizamos los nudos conceptuales con el objetivo de representar las relaciones entre los conceptos por medio de un análisis contrastivo de los conceptos/términos en lengua inglesa y española con el fin de determinar si el uso, en las dos lenguas de estudio, concuerda con la definición dada en los textos y en la normativa de origen.

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En el presente trabajo se han analizado los modelos tensión-deslizamiento más divulgados para estudiar las tensiones en la interfase FRP-Hormigón y la carga máxima mediante su irapíementación en una de las principales técnicas de cálculo numérico fácilmente programable y aplicable para el caso en el que se tiene tracción en ambos extremos de la banda FRP. Los resultados se comparan con las soluciones analíticas encontradas en la literatura, las cuales están limitadas a los casos de una función tensión-deslizamiento lineal y bilineal. Finalmente, se contrasta la teoría con los resultados experimentales obtenidos de ensayos de tipología análoga al método beamtest empleado comúnmente para medir la adherencia de barras de acero.

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HiPER is the European Project for Laser Fusion that has been able to join 26 institutions and signed under formal government agreement by 6 countries inside the ESFRI Program of the European Union (EU). The project is already extended by EU for two years more (until 2013) after its first preparatory phase from 2008. A large work has been developed in different areas to arrive to a design of repetitive operation of Laser Fusion Reactor, and decisions are envisioned in the next phase of Technology Development or Risk Reduction for Engineering or Power Plant facilities (or both). Chamber design has been very much completed for Engineering phase and starting of preliminary options for Reactor Power Plant have been established and review here.

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Runoff generation depends on rainfall, infiltration, interception, and surface depressional storage. Surface depressional storage depends on surface microtopography, usually quantified trough soil surface roughness (SSR). SSR is subject to spatial and temporal changes that create a high variability. In an agricultural environment, tillage operations produce abrupt changes in roughness. Subsequent rainfall gradually decreases roughness. Beside it, local variation in soil properties and hydrology cause its SSR to vary spatially at different scales. The methods commonly used to measure it involve collecting point elevations in regular grids using laser profilers or scanners, digital close range stereo-photogrammetry and terrestrial laser scanning or LIDAR systems. In this case, a laser-scanning instrument was used to obtain representative digital elevation models (DEMs) at a grid resolution of 7.2x7.2mm that cover an area of 0.9x0.9m. The DEMs were obtained from two study sites with different soils. The first study site was an experimental field on which five conventional tillage methods were applied. The second study site was a large olive orchard with trees planted at 7.5x5.0m and bare soils between rows. Here, three tillage treatments were applied. In this work we have evaluated the spatial variability of SSR at several scales studying differences in height calculated from points separated by incremental distances h were raised to power values q (from 0 to 4 in steps of 0.1). The q = 2 data were studied as a semivariogram model. The logarithm of average differences plotted vs. log h were characterized by their slope, ?(q). Structure functions [?(q) vs. q] were fitted showing that data had nonlinear structure functions typical of multiscale phenomena. Comparisson of the two types of soil in their respective structure functions are shown.

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Nitrogen sputtering yields as high as 104 atoms/ion, are obtained by irradiating N-rich-Cu3N films (N concentration: 33 ± 2 at.%) with Cu ions at energies in the range 10?42 MeV. The kinetics of N sputtering as a function of ion fluence is determined at several energies (stopping powers) for films deposited on both, glass and silicon substrates. The kinetic curves show that the amount of nitrogen release strongly increases with rising irradiation fluence up to reaching a saturation level at a low remaining nitrogen fraction (5?10%), in which no further nitrogen reduction is observed. The sputtering rate for nitrogen depletion is found to be independent of the substrate and to linearly increase with electronic stopping power (Se). A stopping power (Sth) threshold of ?3.5 keV/nm for nitrogen depletion has been estimated from extrapolation of the data. Experimental kinetic data have been analyzed within a bulk molecular recombination model. The microscopic mechanisms of the nitrogen depletion process are discussed in terms of a non-radiative exciton decay model. In particular, the estimated threshold is related to a minimum exciton density which is required to achieve efficient sputtering rates.

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Dry-wall laser inertial fusion (LIF) chambers will have to withstand strong bursts of fast charged particles which will deposit tens of kJ m−2 and implant more than 1018 particles m−2 in a few microseconds at a repetition rate of some Hz. Large chamber dimensions and resistant plasma-facing materials must be combined to guarantee the chamber performance as long as possible under the expected threats: heating, fatigue, cracking, formation of defects, retention of light species, swelling and erosion. Current and novel radiation resistant materials for the first wall need to be validated under realistic conditions. However, at present there is a lack of facilities which can reproduce such ion environments. This contribution proposes the use of ultra-intense lasers and high-intense pulsed ion beams (HIPIB) to recreate the plasma conditions in LIF reactors. By target normal sheath acceleration, ultra-intense lasers can generate very short and energetic ion pulses with a spectral distribution similar to that of the inertial fusion ion bursts, suitable to validate fusion materials and to investigate the barely known propagation of those bursts through background plasmas/gases present in the reactor chamber. HIPIB technologies, initially developed for inertial fusion driver systems, provide huge intensity pulses which meet the irradiation conditions expected in the first wall of LIF chambers and thus can be used for the validation of materials too.

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La investigación de un “objeto arquitectónico” enlaza con los principios teóricos desde los que en ARKRIT-LAB se entiende la crítica la arquitectura: la obra antes que el autor y su descripción antes que su interpretación. Consecuentemente, se propuso estudiar un edificio relevante y considerado de gran impacto teórico y mediático, entrando primero de manera precisa en su respuesta al medio, al material, a la medida, a la morfología y a la misión -metodo M3- y proponiendo después, entre los investigadores del laboratorio diversas actividades: re exionar de manera abierta sobre las condiciones de su “arquitectura”, experimentar el edi cio, rastrear sus antecedentes e investigar en la materia concreta y en las formas utilizadas; actividades que buscaban nuevas realidades que pudieran mostrar otras visiones. En el laboratorio consideramos que como arquitectos y como críticos, no resulta super uo aprender a ver más, a oír más, a sentir más y a pensar más4. El edificio elegido para el curso 2010-2011 fue la “Casa da Musica” de Oporto, proyecto de OMA-Rem Koolhaas, siendo el texto que se convirtió en referencia para la primera aproximación el titulado “Otra Modernidad” de Rafael Moneo. Texto en el que se describe el proyecto como encarnación de los nuevos atributos de la arquitectura contemporánea5. “Otra Modernidad” entendida desde la Modernidad, como frontera considerada por Antonio Miranda como referente de progreso y faro de toda acción arquitectónica. Modernidad como anhelo de una sociedad nueva más justa.